Impact of Ultrasound on the Motion of Compact Particles and Acousto-responsive Microgels

Fuente: arXiv
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Main Authors: Stock, Sebastian, von Klitzing, Regine, Rahimzadeh, Amin
Format: Preprint
Published: 2023
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author Stock, Sebastian
von Klitzing, Regine
Rahimzadeh, Amin
author_facet Stock, Sebastian
von Klitzing, Regine
Rahimzadeh, Amin
contents In this study, we investigate dynamic light scattering (DLS) from both randomly diffusing silica particles and acousto-responsive microgels in aqueous dispersions under ultrasonic vibration. Employing high-frequency ultrasound (US) with low amplitude ensures that the polymers remain intact without damage. We derive theoretical expressions for the homodyne autocorrelation function, incorporating the US term alongside the diffusion term. Subsequently, we successfully combine US with a conventional DLS system to experimentally characterize compact silica particles and microgels under the influence of US. Our model allows us to extract essential parameters, including particle size, frequency, and amplitude of particle vibration, based on the correlation function of the scattered light intensity. The studies involving non-responsive silica particles demonstrate that US does not disrupt size determination, establishing them as suitable reference systems. Microgels show the same swelling/shrinking behavior as that induced by temperature, but with significantly faster kinetics. The findings of this study have potential applications in various industrial and biomedical fields that benefit from the characterization of macromolecules subjected to US.
format Preprint
id arxiv_https___arxiv_org_abs_2307_12696
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Impact of Ultrasound on the Motion of Compact Particles and Acousto-responsive Microgels
Stock, Sebastian
von Klitzing, Regine
Rahimzadeh, Amin
Soft Condensed Matter
In this study, we investigate dynamic light scattering (DLS) from both randomly diffusing silica particles and acousto-responsive microgels in aqueous dispersions under ultrasonic vibration. Employing high-frequency ultrasound (US) with low amplitude ensures that the polymers remain intact without damage. We derive theoretical expressions for the homodyne autocorrelation function, incorporating the US term alongside the diffusion term. Subsequently, we successfully combine US with a conventional DLS system to experimentally characterize compact silica particles and microgels under the influence of US. Our model allows us to extract essential parameters, including particle size, frequency, and amplitude of particle vibration, based on the correlation function of the scattered light intensity. The studies involving non-responsive silica particles demonstrate that US does not disrupt size determination, establishing them as suitable reference systems. Microgels show the same swelling/shrinking behavior as that induced by temperature, but with significantly faster kinetics. The findings of this study have potential applications in various industrial and biomedical fields that benefit from the characterization of macromolecules subjected to US.
title Impact of Ultrasound on the Motion of Compact Particles and Acousto-responsive Microgels
topic Soft Condensed Matter
url https://arxiv.org/abs/2307.12696